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Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes

The hydration of phospholipids, electrospun into polymeric nanofibers and used as templates for liposome formation, offers pharmaceutical advantages as it avoids the storage of liposomes as aqueous dispersions. The objective of the present study was to electrospin and characterize amphiphilic nanofi...

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Autores principales: Laidmäe, Ivo, Meos, Andres, Kjærvik, Irja Alainezhad, Ingebrigtsen, Sveinung G., Škalko-Basnet, Nataša, Kirsimäe, Kalle, Romann, Tavo, Joost, Urmas, Kisand, Vambola, Kogermann, Karin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624320/
https://www.ncbi.nlm.nih.gov/pubmed/34834157
http://dx.doi.org/10.3390/pharmaceutics13111742
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author Laidmäe, Ivo
Meos, Andres
Kjærvik, Irja Alainezhad
Ingebrigtsen, Sveinung G.
Škalko-Basnet, Nataša
Kirsimäe, Kalle
Romann, Tavo
Joost, Urmas
Kisand, Vambola
Kogermann, Karin
author_facet Laidmäe, Ivo
Meos, Andres
Kjærvik, Irja Alainezhad
Ingebrigtsen, Sveinung G.
Škalko-Basnet, Nataša
Kirsimäe, Kalle
Romann, Tavo
Joost, Urmas
Kisand, Vambola
Kogermann, Karin
author_sort Laidmäe, Ivo
collection PubMed
description The hydration of phospholipids, electrospun into polymeric nanofibers and used as templates for liposome formation, offers pharmaceutical advantages as it avoids the storage of liposomes as aqueous dispersions. The objective of the present study was to electrospin and characterize amphiphilic nanofibers as templates for the preparation of antibiotic-loaded liposomes and compare this method with the conventional film-hydration method followed by extrusion. The comparison was based on particle size, encapsulation efficiency and drug-release behavior. Chloramphenicol (CAM) was used at different concentrations as a model antibacterial drug. Phosphatidylcoline (PC) with polyvinylpyrrolidone (PVP), using ethanol as a solvent, was found to be successful in fabricating the amphiphilic composite drug-loaded nanofibers as well as liposomes with both methods. The characterization of the nanofiber templates revealed that fiber diameter did not affect the liposome size. According to the optical microscopy results, the immediate hydration of phospholipids deposited on the amphiphilic nanofibers occurred within a few seconds, resulting in the formation of liposomes in water dispersions. The liposomes appeared to aggregate more readily in the concentrated than in the diluted solutions. The drug encapsulation efficiency for the fiber-hydrated liposomes varied between 14.9 and 28.1% and, for film-hydrated liposomes, between 22.0 and 77.1%, depending on the CAM concentrations and additional extrusion steps. The nanofiber hydration method was faster, as less steps were required for the in-situ liposome preparation than in the film-hydration method. The liposomes obtained using nanofiber hydration were smaller and more homogeneous than the conventional liposomes, but less drug was encapsulated.
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spelling pubmed-86243202021-11-27 Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes Laidmäe, Ivo Meos, Andres Kjærvik, Irja Alainezhad Ingebrigtsen, Sveinung G. Škalko-Basnet, Nataša Kirsimäe, Kalle Romann, Tavo Joost, Urmas Kisand, Vambola Kogermann, Karin Pharmaceutics Article The hydration of phospholipids, electrospun into polymeric nanofibers and used as templates for liposome formation, offers pharmaceutical advantages as it avoids the storage of liposomes as aqueous dispersions. The objective of the present study was to electrospin and characterize amphiphilic nanofibers as templates for the preparation of antibiotic-loaded liposomes and compare this method with the conventional film-hydration method followed by extrusion. The comparison was based on particle size, encapsulation efficiency and drug-release behavior. Chloramphenicol (CAM) was used at different concentrations as a model antibacterial drug. Phosphatidylcoline (PC) with polyvinylpyrrolidone (PVP), using ethanol as a solvent, was found to be successful in fabricating the amphiphilic composite drug-loaded nanofibers as well as liposomes with both methods. The characterization of the nanofiber templates revealed that fiber diameter did not affect the liposome size. According to the optical microscopy results, the immediate hydration of phospholipids deposited on the amphiphilic nanofibers occurred within a few seconds, resulting in the formation of liposomes in water dispersions. The liposomes appeared to aggregate more readily in the concentrated than in the diluted solutions. The drug encapsulation efficiency for the fiber-hydrated liposomes varied between 14.9 and 28.1% and, for film-hydrated liposomes, between 22.0 and 77.1%, depending on the CAM concentrations and additional extrusion steps. The nanofiber hydration method was faster, as less steps were required for the in-situ liposome preparation than in the film-hydration method. The liposomes obtained using nanofiber hydration were smaller and more homogeneous than the conventional liposomes, but less drug was encapsulated. MDPI 2021-10-20 /pmc/articles/PMC8624320/ /pubmed/34834157 http://dx.doi.org/10.3390/pharmaceutics13111742 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Laidmäe, Ivo
Meos, Andres
Kjærvik, Irja Alainezhad
Ingebrigtsen, Sveinung G.
Škalko-Basnet, Nataša
Kirsimäe, Kalle
Romann, Tavo
Joost, Urmas
Kisand, Vambola
Kogermann, Karin
Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title_full Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title_fullStr Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title_full_unstemmed Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title_short Electrospun Amphiphilic Nanofibers as Templates for In Situ Preparation of Chloramphenicol-Loaded Liposomes
title_sort electrospun amphiphilic nanofibers as templates for in situ preparation of chloramphenicol-loaded liposomes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8624320/
https://www.ncbi.nlm.nih.gov/pubmed/34834157
http://dx.doi.org/10.3390/pharmaceutics13111742
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